Literature DB >> 31480835

The Role of Intragranular Nanopores in Capacity Fade of Nickel-Rich Layered Li(Ni1-x-yCoxMny)O2 Cathode Materials.

Shamail Ahmed1, Anuj Pokle1, Simon Schweidler2, Andreas Beyer1, Matteo Bianchini2, Felix Walther3, Andrey Mazilkin2,4, Pascal Hartmann2,5, Torsten Brezesinski2, Jürgen Janek2,3, Kerstin Volz1.   

Abstract

Ni-rich layered LiNi1-x-yCoxMnyO2 (NCM, x + y ≤ 0.2) is an intensively studied class of cathode active materials for lithium-ion batteries, offering the advantage of high specific capacities. However, their reactivity is also one of the major issues limiting the lifetime of the batteries. NCM degradation, in literature, is mostly explained both by disintegration of secondary particles (large anisotropic volume changes during lithiation/delithiation) and by formation of rock-salt like phases at the grain surfaces at high potential with related oxygen loss. Here, we report the presence of intragranular nanopores in Li1+x(Ni0.85Co0.1Mn0.05)1-xO2 (NCM851005) and track their morphological evolution from pristine to cycled material (200 and 500 cycles) using aberration-corrected scanning transmission electron microscopy (STEM), electron energy loss spectroscopy, energy dispersive X-ray spectroscopy, and time-of-flight secondary ion mass spectrometry. Pores are already found in the primary particles of pristine material. Any potential effect of TEM sample preparation on the formation of nanopores is ruled out by performing thickness series measurements on the lamellae produced by focused ion beam milling. The presence of nanopores in pristine NCM851005 is in sharp contrast to previously observed pore formation during electrochemical cycling or heating. The intragranular pores have a diameter in the range between 10 and 50 nm with a distinct morphology that changes during cycling operation. A rock-salt like region is observed at the pore boundaries even in pristine material, and these regions grow with prolonged cycling. It is suggested that the presence of nanopores strongly affects the degradation of high-Ni NCM, as the pore surfaces apparently increase (i) oxygen loss, (ii) formation of rock-salt regions, and (iii) strain-induced effects within the primary grains. High-resolution STEM demonstrates that nanopores are a source of intragranular cracking during cycling.

Entities:  

Keywords:  Li-ion battery; Ni-rich NCM; capacity fading; cathode active material; electron energy loss spectroscopy; scanning transmission electron microscopy

Year:  2019        PMID: 31480835     DOI: 10.1021/acsnano.9b05047

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  4 in total

1.  In situ multiscale probing of the synthesis of a Ni-rich layered oxide cathode reveals reaction heterogeneity driven by competing kinetic pathways.

Authors:  Hyeokjun Park; Hayoung Park; Kyung Song; Seok Hyun Song; Sungsu Kang; Kun-Hee Ko; Donggun Eum; Yonggoon Jeon; Jihoon Kim; Won Mo Seong; Hyungsub Kim; Jungwon Park; Kisuk Kang
Journal:  Nat Chem       Date:  2022-04-21       Impact factor: 24.427

2.  Hierarchical nickel valence gradient stabilizes high-nickel content layered cathode materials.

Authors:  Ruoqian Lin; Seong-Min Bak; Youngho Shin; Rui Zhang; Chunyang Wang; Kim Kisslinger; Mingyuan Ge; Xiaojing Huang; Zulipiya Shadike; Ajith Pattammattel; Hanfei Yan; Yong Chu; Jinpeng Wu; Wanli Yang; M Stanley Whittingham; Huolin L Xin; Xiao-Qing Yang
Journal:  Nat Commun       Date:  2021-04-20       Impact factor: 14.919

Review 3.  Identifying surface degradation, mechanical failure, and thermal instability phenomena of high energy density Ni-rich NCM cathode materials for lithium-ion batteries: a review.

Authors:  Fikadu Takele Geldasa; Mesfin Abayneh Kebede; Megersa Wodajo Shura; Fekadu Gashaw Hone
Journal:  RSC Adv       Date:  2022-02-16       Impact factor: 3.361

4.  Native lattice strain induced structural earthquake in sodium layered oxide cathodes.

Authors:  Gui-Liang Xu; Xiang Liu; Xinwei Zhou; Chen Zhao; Inhui Hwang; Amine Daali; Zhenzhen Yang; Yang Ren; Cheng-Jun Sun; Zonghai Chen; Yuzi Liu; Khalil Amine
Journal:  Nat Commun       Date:  2022-01-27       Impact factor: 14.919

  4 in total

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